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Identification of Anaerobic Aniline-Degrading Bacteria at a Contaminated Industrial Site

机译:在受污染的工业场所识别厌氧降解苯胺的细菌

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Anaerobic aniline biodegradation was investigated under different electron-accepting conditions using contaminated canal and groundwater aquifer sediments from an industrial site. Aniline loss was observed in nitrate- and sulfate-amended microcosms and in microcosms established to promote methanogenic conditions. Lag times of 37 days (sulfate amended) to more than 100 days (methanogenic) were observed prior to activity. Time-series DNA-stable isotope probing (SIP) was used to identify bacteria that incorporated ~(13)C-labeled aniline in the microcosms established to promote methanogenic conditions. In microcosms from heavily contaminated aquifer sediments, a phylotype with 92.7% sequence similarity to Ignavibacterium album was identified as a dominant aniline degrader as indicated by incorporation of ~(13)C-aniline into its DNA. In microcosms from contaminated canal sediments, a bacterial phylotype within the family Anaerolineaceae, but without a match to any known genus, demonstrated the assimilation of ~(13)C-aniline. Acidovorax spp. were also identified as putative aniline degraders in both of these two treatments, indicating that these species were present and active in both the canal and aquifer sediments. There were multiple bacterial phylotypes associated with anaerobic degradation of aniline at this complex industrial site, which suggests that anaerobic transformation of aniline is an important process at the site. Furthermore, the aniline degrading phylotypes identified in the current study are not related to any known aniline-degrading bacteria. The identification of novel putative aniline degraders expands current knowledge regarding the potential fate of aniline under anaerobic conditions.
机译:使用工业现场受污染的运河和地下水含水层沉积物,在不同的电子接受条件下研究了厌氧苯胺的生物降解。在硝酸盐和硫酸盐改良的缩影以及为促进产甲烷条件而建立的缩影中观察到苯胺损失。活动前观察到滞后时间为37天(硫酸盐修正)至100天以上(产甲烷)。使用时间序列DNA稳定同位素探测(SIP)来鉴定在建立以促进产甲烷条件的微观世界中掺入〜(13)C标记的苯胺的细菌。在重污染的含水层沉积物的缩影中,通过将〜(13)C-苯胺掺入其DNA,表明与Ignavibacterium album具有92.7%序列相似性的系统型被确定为主要的苯胺降解剂。在受污染的运河沉积物的缩影中,厌氧菌科中的一种细菌系统型,但与任何已知属都不匹配,证明了〜(13)C-苯胺的同化。嗜酸菌属在这两种处理中,它们也被认为是假定的苯胺降解剂,表明这些物种在渠道和含水层沉积物中均存在并活跃。在这个复杂的工业场所,有多种细菌系统型与苯胺的厌氧降解有关,这表明苯胺的厌氧转化是该场所的重要过程。此外,在本研究中确定的苯胺降解系统型与任何已知的苯胺降解细菌均无关。新型假定的苯胺降解剂的鉴定扩大了有关厌氧条件下苯胺潜在命运的现有知识。

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  • 来源
    《Environmental Science & Technology》 |2015年第18期|11079-11088|共10页
  • 作者单位

    Department of Environmental Sciences, Rutgers University, 14 College Farm Road, New Brunswick, New Jersey 08901, United States,Department of Biochemistry and Microbiology, Rutgers University, New Brunswick, New Jersey 08901, United States;

    Department of Environmental Sciences, Rutgers University, 14 College Farm Road, New Brunswick, New Jersey 08901, United States;

    Department of Marine and Coastal Sciences, Rutgers University, New Brunswick, New Jersey 08901, United States;

    Department of Environmental Sciences, Rutgers University, 14 College Farm Road, New Brunswick, New Jersey 08901, United States;

    Department of Environmental Sciences, Rutgers University, 14 College Farm Road, New Brunswick, New Jersey 08901, United States;

    Department of Marine and Coastal Sciences, Rutgers University, New Brunswick, New Jersey 08901, United States;

    DuPont, Corporate Remediation Group, Wilmington, Delaware 19714, United States;

    Department of Biochemistry and Microbiology, Rutgers University, New Brunswick, New Jersey 08901, United States;

    Department of Environmental Sciences, Rutgers University, 14 College Farm Road, New Brunswick, New Jersey 08901, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-17 13:59:51

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